一种用于废旧电器电子设备颗粒物料塑料回收的摩擦静电空气分离器的性能改进

M. Miloudi, L. Dascalescu, Jia Li, K. Medles, A. Tilmatine
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引用次数: 0

摘要

2010年获得专利的双传送带电极摩擦空气静电分离器,用于在垂直于流化空气方向的电场作用下,对流化床中颗粒状混合绝缘材料进行分选。实验证明该样机对≤2mm的绝缘颗粒的分离效率高,回收率高。对于较大的颗粒(2 ~ 4.5 mm),其性能不太令人满意。本工作的目的是评估该装置结构的三种修改,通过控制颗粒获得的电荷和电场强度来增加每小时的吞吐量并提高产品的纯度。通过数值模拟优化了分离器活动区的电场分布,并进行了实验研究,以确定摩擦电作用下颗粒充电的最佳条件。采用丙烯腈-丁二烯-苯乙烯(ABS)和高冲击聚苯乙烯(HIPS)的混合物,对四种结构的电极体系进行了试验。典型的颗粒尺寸为2至4.5 mm。实验方法验证了流化床相对于输送电极位置的改变,以增加颗粒材料的停留时间,从而增加每个颗粒获得的电荷量。为了加强电场,测试并验证了两种解决方案:(1)在高压电极附近增加接地电极;(2)将高压电极垂直放置。对于所测试的材料,电极的垂直排列提供了最佳的每小时吞吐量和分离产品的纯度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance improvement of a separator tribo-electrostatic aero for granular materials plastics recycling of waste electrical and electronic equipment
The two-conveyor-electrodes tribo-aero-electrostatic separator patented in 2010 was designed to sort granular mixtures of insulating materials in a fluidized bed subjected to an electric field perpendicular to the direction of the fluidizing air. The prototype ≤has proven its efficiency for the separation of insulating granules ≤ 2 mm, attaining excellent recovery rates. Its performances were less satisfactory for larger particles (2 to 4.5 mm). The objective of this work is to evaluate three modifications of the construction of this device, in order to increase the hourly throughput and improve the purity of the products, by controlling the charge acquired by the granules and the electric field intensity. Numerical simulations enabled the optimization of the electric field distribution in the active zone of the separator and an experimental study was carried out in order to identify the best conditions for granule charging by triboelectric effect. The tests were carried out for four configurations of the electrode system, by using a mixture of acrylonitrile butadiene styrene (ABS) and high impact polystyrene (HIPS) originated from grinding out-of-use computer cases. The typical granule size was 2 to 4.5 mm. The experimental approach validated a change in the position of the fluidized bed with respect to the conveyor electrodes, to increase the residence time of the granular materials and hence the amount of electric charge acquired by each particle. In order to intensify the electrical field, two solutions were tested and validated: (1) add a grounding electrode in the proximity of the high-voltage electrodes; (2) dispose vertically the high voltage electrodes. For the tested materials, the vertical arrangement of the electrodes gave the best hourly throughput rates and purity of the separated products.
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